Extracellular Vesicle-Driven Crosstalk between Legume Plants and Rhizobia: The Peribacteroid Space of Symbiosomes as a Protein Trafficking Interface.

IF 3.6 2区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS Journal of Proteome Research Pub Date : 2025-01-03 Epub Date: 2024-12-12 DOI:10.1021/acs.jproteome.4c00444
Paula Ayala-García, Irene Herrero-Gómez, Irene Jiménez-Guerrero, Viktoria Otto, Natalia Moreno-de Castro, Mathias Müsken, Lothar Jänsch, Marco van Ham, José-María Vinardell, Francisco Javier López-Baena, Francisco Javier Ollero, Francisco Pérez-Montaño, José Manuel Borrero-de Acuña
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Abstract

Prokaryotes and eukaryotes secrete extracellular vesicles (EVs) into the surrounding milieu to preserve and transport elevated concentrations of biomolecules across long distances. EVs encapsulate metabolites, DNA, RNA, and proteins, whose abundance and composition fluctuate depending on environmental cues. EVs are involved in eukaryote-to-prokaryote communication owing to their ability to navigate different ecological niches and exchange molecular cargo between the two domains. Among the different bacterium-host relationships, rhizobium-legume symbiosis is one of the closest known to nature. A crucial developmental stage of symbiosis is the formation of N2-fixing root nodules by the plant. These nodules contain endocytosed rhizobia─called bacteroids─confined by plant-derived peribacteroid membranes. The unrestricted interface between the bacterial external membrane and the peribacteroid membrane is the peribacteroid space. Many molecular aspects of symbiosis have been studied, but the interbacterial and interdomain molecule trafficking by EVs in the peribacteroid space has not been questioned yet. Here, we unveil intensive EV trafficking within the symbiosome interface of several rhizobium-legume dual systems by developing a robust EV isolation procedure. We analyze the EV-encased proteomes from the peribacteroid space of each bacterium-host partnership, uncovering both conserved and differential traits of every symbiotic system. This study opens the gates for designing EV-based biotechnological tools for sustainable agriculture.

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豆科植物与根瘤菌胞外囊泡驱动的串扰:共生体的类细菌周围空间作为蛋白质运输界面。
原核生物和真核生物分泌细胞外囊泡(EVs)到周围环境中,以远距离保存和运输高浓度的生物分子。电动汽车封装代谢物、DNA、RNA和蛋白质,其丰度和组成随环境因素而波动。电动汽车参与真核生物与原核生物之间的通信,因为它们能够导航不同的生态位并在两个区域之间交换分子货物。在不同的细菌-宿主关系中,根瘤菌-豆科植物的共生关系是最接近自然的关系之一。共生关系的一个关键发育阶段是植物形成固氮根瘤。这些根瘤含有内吞的根瘤菌──称为类杆菌──被植物源性的类杆菌膜所限制。细菌外膜和类杆菌膜之间的不受限制的界面称为类杆菌间隙。共生的许多分子方面已经得到了研究,但ev在类细菌周围空间的细菌间和结构域间分子运输尚未受到质疑。在这里,我们通过开发一种强大的EV分离程序,揭示了几种根瘤菌-豆科双系统共生界面内EV的密集贩运。我们从每个细菌-宿主伙伴关系的类杆菌周围空间分析了ev包裹的蛋白质组,揭示了每个共生系统的保守和差异特征。这项研究为设计基于电动汽车的可持续农业生物技术工具打开了大门。
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来源期刊
Journal of Proteome Research
Journal of Proteome Research 生物-生化研究方法
CiteScore
9.00
自引率
4.50%
发文量
251
审稿时长
3 months
期刊介绍: Journal of Proteome Research publishes content encompassing all aspects of global protein analysis and function, including the dynamic aspects of genomics, spatio-temporal proteomics, metabonomics and metabolomics, clinical and agricultural proteomics, as well as advances in methodology including bioinformatics. The theme and emphasis is on a multidisciplinary approach to the life sciences through the synergy between the different types of "omics".
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